Bandgap Engineering of Graphene Nanoribbon via High‐Pressure Topochemical Synthesis

P Peijie Zhang (Department of Chemistry) Y Yunfan Fei (Center for High Pressure Science and Technology Advanced Research (HPSTAR)) Q Qingchao Zeng (Center For High Pressure Science and Technology Advanced Research (HPSTAR) Beijing China) J Jingqin Xu (Center for High Pressure Science and Technology Advanced Research Beijing 100193 P.R. China) F Fang Li J Jianjun Mao C Chengliang Xia Y Yue Chen (State Key Laboratory of Natural Medicines and Jiangsu Key Laboratory of Drug Discovery for Metabolic Diseases, Center of Advanced Pharmaceuticals and Biomaterials) J Jie Liu Y Yajie Wang (School of Engineering, Westlake University, Hangzhou, China.) X Xiaoge Wang (College of Chemistry and Molecular Engineering, Beijing National Laboratory for Molecular Sciences) J Jing Ju (College of Chemistry and Molecular Engineering, Beijing National Laboratory for Molecular Sciences) L Liangliang Meng (State Key Laboratory of High‐efficiency Utilization of Coal and Green Chemical Engineering College of Chemistry and Chemical Engineering Ningxia University Yinchuan Ningxia 750021 P.R. China) H Hongcun Bai (State Key Laboratory of High‐efficiency Utilization of Coal and Green Chemical Engineering College of Chemistry and Chemical Engineering Ningxia University Yinchuan Ningxia 750021 P.R. China) H Hongliang Dong (Center for High Pressure Science and Technology Advanced Research) X Xingyu Tang (Center for High Pressure Science and Technology Advanced Research) D Dexiang Gao X Xuan Wang X Xiao Dong H Ho‐kwang Mao (Center for High Pressure Science and Technology Advanced Research Beijing 100193 P.R. China) H Haiyan Zheng K Kuo Li

Abstract

Abstract Graphene nanoribbons (GNRs) have attracted broad attention for their potential application in nanoelectronics. The electronic properties of the GNRs are closely related to their chemical structure like width, edge, terminating and hetero atoms, etc., and widely applied synthetic methods for the scalable synthesis of specific GNRs with atom‐scale precision are urgently required. Here, we found that the stoichiometric and ordered positioning of N and sp 3 ‐CH in 8‐armchair‐GNR ([8]‐AGNR) effectively modifies their bandgap in a large range of 0–2.85 eV by theoretical calculations. Employing our recent‐developed high‐pressure topochemical dehydro‐Diels–Alder polymerization, three of these [8]‐AGNRs were synthesized successfully in their bulk phase starting from crystalline dipyridinyl/dipyrimidinyl butadiynes, with the maximum nitrogen content of 27% in mass. The structures of these GNRs were demonstrated by spectroscopy, diffraction, transmission electron microscope, pair distribution function, and solid‐state nuclear magnetic resonance methods. UV–vis‐NIR diffuse reflectance spectra clearly evidenced the precise tuning of the electronic structures in these N and CH substituted [8]‐AGNRs. Our work shows great versatility of this high‐pressure topochemical synthetic strategy in synthesizing GNRs with site‐specific N and sp 3 ‐CH substitutions. This strategy can also be applied to synthesizing more structure‐specific carbon nano‐materials.

Article Details

Volume / Issue Vol. 64, Issue 45
Published November 03, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (22)

P

Peijie Zhang

Department of Chemistry

Y

Yunfan Fei

Center for High Pressure Science and Technology Advanced Research (HPSTAR)

Q

Qingchao Zeng

Center For High Pressure Science and Technology Advanced Research (HPSTAR) Beijing China

J

Jingqin Xu

Center for High Pressure Science and Technology Advanced Research Beijing 100193 P.R. China

F

Fang Li

J

Jianjun Mao

C

Chengliang Xia

Y

Yue Chen

State Key Laboratory of Natural Medicines and Jiangsu Key Laboratory of Drug Discovery for Metabolic Diseases, Center of Advanced Pharmaceuticals and Biomaterials

J

Jie Liu

Y

Yajie Wang

School of Engineering, Westlake University, Hangzhou, China.

X

Xiaoge Wang

College of Chemistry and Molecular Engineering, Beijing National Laboratory for Molecular Sciences

J

Jing Ju

College of Chemistry and Molecular Engineering, Beijing National Laboratory for Molecular Sciences

L

Liangliang Meng

State Key Laboratory of High‐efficiency Utilization of Coal and Green Chemical Engineering College of Chemistry and Chemical Engineering Ningxia University Yinchuan Ningxia 750021 P.R. China

H

Hongcun Bai

State Key Laboratory of High‐efficiency Utilization of Coal and Green Chemical Engineering College of Chemistry and Chemical Engineering Ningxia University Yinchuan Ningxia 750021 P.R. China

H

Hongliang Dong

Center for High Pressure Science and Technology Advanced Research

X

Xingyu Tang

Center for High Pressure Science and Technology Advanced Research

D

Dexiang Gao

X

Xuan Wang

X

Xiao Dong

H

Ho‐kwang Mao

Center for High Pressure Science and Technology Advanced Research Beijing 100193 P.R. China

H

Haiyan Zheng

K

Kuo Li